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LARa: Creating a Dataset for Human Activity Recognition in Logistics Using Semantic Attributes.


ABSTRACT: Optimizations in logistics require recognition and analysis of human activities. The potential of sensor-based human activity recognition (HAR) in logistics is not yet well explored. Despite a significant increase in HAR datasets in the past twenty years, no available dataset depicts activities in logistics. This contribution presents the first freely accessible logistics-dataset. In the 'Innovationlab Hybrid Services in Logistics' at TU Dortmund University, two picking and one packing scenarios were recreated. Fourteen subjects were recorded individually when performing warehousing activities using Optical marker-based Motion Capture (OMoCap), inertial measurement units (IMUs), and an RGB camera. A total of 758 min of recordings were labeled by 12 annotators in 474 person-h. All the given data have been labeled and categorized into 8 activity classes and 19 binary coarse-semantic descriptions, also called attributes. The dataset is deployed for solving HAR using deep networks.

SUBMITTER: Niemann F 

PROVIDER: S-EPMC7436169 | biostudies-literature | 2020 Jul

REPOSITORIES: biostudies-literature

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LARa: Creating a Dataset for Human Activity Recognition in Logistics Using Semantic Attributes.

Niemann Friedrich F   Reining Christopher C   Moya Rueda Fernando F   Nair Nilah Ravi NR   Steffens Janine Anika JA   Fink Gernot A GA   Ten Hompel Michael M  

Sensors (Basel, Switzerland) 20200722 15


Optimizations in logistics require recognition and analysis of human activities. The potential of sensor-based human activity recognition (HAR) in logistics is not yet well explored. Despite a significant increase in HAR datasets in the past twenty years, no available dataset depicts activities in logistics. This contribution presents the first freely accessible logistics-dataset. In the 'Innovationlab Hybrid Services in Logistics' at TU Dortmund University, two picking and one packing scenarios  ...[more]

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